Responses of primary visual cortical neurons to binocular disparity without depth perception
- 18 September 1997
- journal article
- research article
- Published by Springer Nature in Nature
- Vol. 389 (6648) , 280-283
- https://doi.org/10.1038/38487
Abstract
The identification of brain regions that are associated with the conscious perception of visual stimuli is a major goal in neuroscience1. Here we present a test of whether the signals on neurons in cortical area V1 correspond directly to our conscious perception of binocular stereoscopic depth. Depth perception requires that image features on one retina are first matched with appropriate features on the other retina. The mechanisms that perform this matching can be examined by using random-dot stereograms2, in which the left and right eyes view randomly positioned but binocularly correlated dots. We exploit the fact that anticorrelated random-dot stereograms (in which dots in one eye are matched geometrically to dots of the opposite contrast in the other eye) do not give rise to the perception of depth3 because the matching process does not find a consistent solution. Anticorrelated random-dot stereograms contain binocular features that could excite neurons that have not solved the correspondence problem. We demonstrate that disparity-selective neurons in V1 signal the disparity of anticorrelated random-dot stereograms, indicating that they do not unambiguously signal stereoscopic depth. Hence single V1 neurons cannot account for the conscious perception of stereopsis, although combining the outputs of many V1 neurons could solve the matching problem. The accompanying paper4 suggests an additional function for disparity signals from V1: they may be important for the rapid involuntary control of vergence eye movements (eye movements that bring the images on the two foveae into register).Keywords
This publication has 16 references indexed in Scilit:
- Vergence eye movements in response to binocular disparity without depth perceptionNature, 1997
- Are we aware of neural activity in primary visual cortex?Nature, 1995
- Computing Stereo Disparity and Motion with Known Binocular Cell PropertiesNeural Computation, 1994
- Depth in anticorrelated stereograms: Effects of spatial density and interocular delayVision Research, 1993
- Stereoscopic Depth Discrimination in the Visual Cortex: Neurons Ideally Suited as Disparity DetectorsScience, 1990
- Responses of neurons in visual cortex (V1 and V2) of the alert macaque to dynamic random-dot stereogramsVision Research, 1985
- A computer implementation of a theory of human stereo visionPhilosophical Transactions of the Royal Society of London. B, Biological Sciences, 1981
- A computational theory of human stereo visionProceedings of the Royal Society of London. B. Biological Sciences, 1979
- Analysis of retinal correspondence by studying receptive fields of rinocular single units in cat striate cortexExperimental Brain Research, 1968
- The neural mechanism of binocular depth discriminationThe Journal of Physiology, 1967